• 제목/요약/키워드: Moment invariant feature

검색결과 45건 처리시간 0.026초

3D Object Recognition Using SOFM (3D Object Recognition Using SOFM)

  • 조현철;손호웅
    • 지구물리
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    • 제9권2호
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    • pp.99-103
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    • 2006
  • 3D object recognition independent of translation and rotation using an ultrasonic sensor array, invariant moment vectors and SOFM(Self Organizing Feature Map) neural networks is presented. Using invariant moment vectors of the acquired 16×8 pixel data of square, rectangular, cylindric and regular triangular blocks, 3D objects could be classified by SOFM neural networks. Invariant moment vectors are constant independent of translation and rotation. The recognition rates for the training and testing data were 95.91% and 92.13%, respectively.

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SSD 알고리즘 기반 MI-FL을 적용한 회전 불변의 다중 객체 검출 시스템 구현 (Implementation of Rotating Invariant Multi Object Detection System Applying MI-FL Based on SSD Algorithm)

  • 박수빈;임혜연;강대성
    • 한국정보기술학회논문지
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    • 제17권5호
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    • pp.13-20
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    • 2019
  • 최근 CNN을 기반으로 한 객체 검출 기술의 연구가 활발하다. 객체 검출 기술은 자율주행차, 지능형 영상분석 등에서 중요한 기술로 사용된다. 본 논문에서는 CNN 기반의 객체 검출기 중 하나인 SSD(Single Shot Multibox Detector)에 MI-FL(Moment Invariant-Feature Layer)을 적용하여 회전 변형에 강인한 객체 검출 시스템을 제안한다. 먼저 VGG 네트워크를 기반으로 입력 이미지의 특징을 추출한다. 그 후 총 6개의 특징 계층(Feature layer)을 적용하여 객체의 위치 정보와 종류를 예측해 경계 박스들을 생성한다. 그 후 NMS 알고리즘을 이용해 가장 객체일 확률이 높은 경계 박스를 얻는다. 하나의 객체 경계 박스가 정해지면 MI-FL을 이용해 해당 영역의 불변 모멘트 특징을 추출하여 미리 저장하고 학습한다. 이후 검출 과정에서 미리 저장해둔 불면모멘트 특징 정보를 이용해 검출함으로써 회전된 이미지에 대해 기존 방법보다 더 강인한 검출이 가능하다. 기존의 SSD와 MI-FL을 적용한 SSD의 비교를 통해 약 4~5%의 성능 향상을 확인하였다.

Open-Ball Scheme을 이용한 2D 패턴의 상대적 닮음 정도 측정의 Moment Invariant Method와의 비교 (Similarity Measurement Using Open-Ball Scheme for 2D Patterns in Comparison with Moment Invariant Method)

  • 김성수
    • 대한전기학회논문지:전력기술부문A
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    • 제48권1호
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    • pp.76-81
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    • 1999
  • The degree of relative similarity between 2D patterns is obtained using Open-Ball Scheme. Open-Ball Scheme employs a method of transforming the geometrical information on 3D objects or 2D patterns into the features to measure the relative similarity for object(patten) recognition, with invariance on scale, rotation, and translation. The feature of an object is used to obtain the relative similarity and mapped into [0, 1] the interval of real line. For decades, Moment-Invariant Method has been used as one of the excellent methods for pattern classification and object recognition. Open-Ball Scheme uses the geometrical structure of patterns while Moment Invariant Method uses the statistical characteristics. Open-Ball Scheme is compared to Moment Invariant Method with respect to the way that it interprets two-dimensional patten classification, especially the paradigms are compared by the degree of closeness to human's intuitive understanding. Finally the effectiveness of the proposed Open-Ball Scheme is illustrated through simulations.

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단면의 성질을 적용한 크기와 회전 변화에 불변인 영상 검사 시스템 (The characteristics of section applied image inspection system to the moment values are invariant with respect to variable object size and rotation)

  • 이용중;김태원;김기대;류재엽
    • 한국공작기계학회:학술대회논문집
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    • 한국공작기계학회 2001년도 춘계학술대회 논문집(한국공작기계학회)
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    • pp.131-136
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    • 2001
  • The purpose of this paper is to develop image inspection system endows an automatic operating and measuring that the moment values are invariant with respect to variable object size and rotation. In this paper, using these moment feature vector with Hu s 7 invariant moment is also given. The characteristics of section which is applied in the mechanics used moment descriptor of invariant moment detection algorithm for image inspection system. Corresponding rates between 94% and 96% have been achived for all object tested.

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A New Shape Adaptation Scheme to Affine Invariant Detector

  • Liu, Congxin;Yang, Jie;Zhou, Yue;Feng, Deying
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제4권6호
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    • pp.1253-1272
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    • 2010
  • In this paper, we propose a new affine shape adaptation scheme for the affine invariant feature detector, in which the convergence stability is still an opening problem. This paper examines the relation between the integration scale matrix of next iteration and the current second moment matrix and finds that the convergence stability of the method can be improved by adjusting the relation between the two matrices instead of keeping them always proportional as proposed by previous methods. By estimating and updating the shape of the integration kernel and differentiation kernel in each iteration based on the anisotropy of the current second moment matrix, we propose a coarse-to-fine affine shape adaptation scheme which is able to adjust the pace of convergence and enable the process to converge smoothly. The feature matching experiments demonstrate that the proposed approach obtains an improvement in convergence ratio and repeatability compared with the current schemes with relatively fixed integration kernel.

불변 모멘트 영상 검사 시스템 구현 (An Implementation of Image Inspection System for Invariants Moment)

  • 이용중;김학범;윤진수;김형조;이양범
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2001년도 하계학술대회 논문집 D
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    • pp.2449-2451
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    • 2001
  • The purpose of this paper is to develop image inspection system endows an automatic operating and measuring that the moment values are invariant with respect to variable object size and rotation. In this paper, using these moment feature vector with Hu's 7 invariant moment is also given. The characteristics of section which is applied in the mechanics used moment descriptor of invariant moment detection algorithm for image inspection system. Corresponding rates between 94% and 96% have archived for all object tested.

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Fingerprint Verification Based on Invariant Moment Features and Nonlinear BPNN

  • Yang, Ju-Cheng;Park, Dong-Sun
    • International Journal of Control, Automation, and Systems
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    • 제6권6호
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    • pp.800-808
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    • 2008
  • A fingerprint verification system based on a set of invariant moment features and a nonlinear Back Propagation Neural Network(BPNN) verifier is proposed. An image-based method with invariant moment features for fingerprint verification is used to overcome the demerits of traditional minutiae-based methods and other image-based methods. The proposed system contains two stages: an off-line stage for template processing and an on-line stage for testing with input fingerprints. The system preprocesses fingerprints and reliably detects a unique reference point to determine a Region-of-Interest(ROI). A total of four sets of seven invariant moment features are extracted from four partitioned sub-images of an ROI. Matching between the feature vectors of a test fingerprint and those of a template fingerprint in the database is evaluated by a nonlinear BPNN and its performance is compared with other methods in terms of absolute distance as a similarity measure. The experimental results show that the proposed method with BPNN matching has a higher matching accuracy, while the method with absolute distance has a faster matching speed. Comparison results with other famous methods also show that the proposed method outperforms them in verification accuracy.

Zernike 모멘트와 Wavelet을 이용한 홍채인식 (A Iris Recognition Using Zernike Moment and Wavelet)

  • 최창수;박종천;전병민
    • 한국산학기술학회논문지
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    • 제11권11호
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    • pp.4568-4575
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    • 2010
  • 홍채인식은 홍채의 무늬 패턴 정보를 이용하는 생체인식 기술로 안정성, 보안성과 같은 특징을 가지고 있기 때문에 높은 보안을 요구하는 환경에 특히 적합하다. 최근 들어 홍채정보를 이용하여 출입통제, 정보보안등의 분야에 많이 활용되고 있다. 홍채 특징 추출시 크기, 조명, 회전에 무관한 홍채 특징을 추출하는 것이 바람직하다. 홍채크기 및 조명 문제는 전처리를 통해 쉽게 해결할 수 있지만 회전에 무관한 홍채 특징 추출은 여전히 문제가 된다. 본 논문에서는 회전 보정으로 인한 인식률 및 속도 저하를 개선하기 위해 Zernike 모멘트와 Daubechies Wavelet을 이용한 홍채인식 방법을 제안한다. 제안한 방법은 회전에 불변한 Zernike 모멘트의 통계적 특성을 이용하여 회전된 홍채에 대해서 1단계로 유사홍채를 분류함으로서 홍채인식에 필요한 시간을 단축하였고, 인식성능 역시 기존 방법과 대등함을 보였다. 따라서 제안한 방법이 대용량의 홍채 인식 시스템에 효과적인 적용이 가능함을 확인할 수 있었다.

Pattern Recognition with Rotation Invariant Multiresolution Features

  • Rodtook, S.;Makhanov, S.S.
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 2004년도 ICCAS
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    • pp.1057-1060
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    • 2004
  • We propose new rotation moment invariants based on multiresolution filter bank techniques. The multiresolution pyramid motivates our simple but efficient feature selection procedure based on the fuzzy C-mean clustering, combined with the Mahalanobis distance. The procedure verifies an impact of random noise as well as an interesting and less known impact of noise due to spatial transformations. The recognition accuracy of the proposed techniques has been tested with the preceding moment invariants as well as with some wavelet based schemes. The numerical experiments, with more than 30,000 images, demonstrate a tangible accuracy increase of about 3% for low noise, 8% for the average noise and 15% for high level noise.

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1-3형 복합압전체 초음파센서와 불변모멘트를 이용한 3차원 수중 물체인식 (3-D Underwater Object Recognition Using Ultrasonic Sensor Fabricated with 1-3 type Piezoelectric Composites and Invariant moment)

  • 조현철
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2000년도 하계학술대회 논문집 D
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    • pp.2330-2332
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    • 2000
  • In this study, 3-D underwater object recognition using ultrasonic sensor fabricated with PZT-Polymer 1-3 type composites and invariant moment vector and SOFM(Self Organizing Feature Map) neural networks are presented. The recognition rates for the training data and the testing data were 99% and 93%, respectively.

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